BERT for Evidence Retrieval and Claim Verification

October 07, 2019 ยท Declared Dead ยท ๐Ÿ› European Conference on Information Retrieval

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Authors Amir Soleimani, Christof Monz, Marcel Worring arXiv ID 1910.02655 Category cs.CL: Computation & Language Citations 143 Venue European Conference on Information Retrieval Last Checked 3 months ago
Abstract
Motivated by the promising performance of pre-trained language models, we investigate BERT in an evidence retrieval and claim verification pipeline for the FEVER fact extraction and verification challenge. To this end, we propose to use two BERT models, one for retrieving potential evidence sentences supporting or rejecting claims, and another for verifying claims based on the predicted evidence sets. To train the BERT retrieval system, we use pointwise and pairwise loss functions, and examine the effect of hard negative mining. A second BERT model is trained to classify the samples as supported, refuted, and not enough information. Our system achieves a new state of the art recall of 87.1 for retrieving top five sentences out of the FEVER documents consisting of 50K Wikipedia pages, and scores second in the official leaderboard with the FEVER score of 69.7.
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